AI Senior Scientist

Vivodyne

• $220K — $270K *
Pharmaceuticals & Biotech
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • PhD in Computer Science, Applied Mathematics, or related field, or equivalent practical experience.
  • Proven expertise in advanced ML architectures (Transformers, Diffusion, multi-modal models) for Generative AI.
  • History of success in image processing and large-scale model training.
  • Strong knowledge of AWS or another cloud provider for MLOps and big data processing.
  • Familiarity with biological or biomedical imaging; experience with multi-modal Phenomaps is a plus.

Responsibilities

  • Collaborate with stakeholders to understand scientific objectives and innovate using Vivodyne's datasets.
  • Lead the development of cutting-edge machine learning models focused on image processing and enhancement.
  • Build and deploy data pipelines capable of handling petabyte-scale data on cloud platforms.
  • Develop novel methods for integrating multi-omics data into imaging-based Phenomaps.
  • Partner with engineers to refine data collection strategies and improve AI-driven solutions.
  • Maintain scientific rigor through peer reviews and clear communication of methodologies.
  • Design high-throughput compute and analytics pipelines emphasizing efficiency and modularity.

Benefits

  • On-site work at Vivodyne's Brisbane, California office allows for close collaboration.
  • Opportunity to work at the forefront of AI applications in biology and healthcare.
  • Engagement with a cross-functional team of experts in various disciplines.
  • Access to substantial datasets and advanced technology for impactful discoveries.
  • Room for professional growth through collaboration and mentoring opportunities.
Full Job Description
Role

The AI Team at Vivodyne tackles some of the hardest and most interesting challenges in science and engineering. With access to extraordinarily feature-rich and massive-scale Vivodyne human tissue imagery, we are advancing the frontiers of artificial intelligence and its applications in biology. We are building a portfolio of AI technologies to automate the discovery, development, and de-risking of novel therapies using our unique technology platform, including single-cell 3D phenomics/machine vision, multimodal (multi-omic) translation, and reinforcement learning for robotic planning & study design, among others.

As an AI Senior Scientist, you'll leverage your deep expertise in developing large-scale models (including Transformer, Diffusion, and hybrid architectures) and Generative AI solutions to help turn our state-of-the-art imaging and multi-omics datasets into groundbreaking scientific insights. You will collaborate closely with biologists, engineers, and AI specialists to deliver robust, production-ready algorithms and models that power Vivodyne's high-impact discoveries.

This role will be based on-site at our offices in Brisbane, California
Responsibilities
  • Scientific Innovation - Work closely with internal and external stakeholders to understand their scientific objectives and innovate new approaches that utilize Vivodyne's massive-scale imaging and multi-omics datasets.
  • Model Development - Lead hands-on development of cutting-edge machine learning models (Transformers, Diffusion, hybrid architectures, etc.) with a focus on image processing, image enhancement, and Phenomap embeddings.
  • Data Pipeline Optimization - Build and deploy pipelines capable of scaling to petabyte-scale data, ensuring robust MLOps practices on AWS or equivalent cloud platforms.
  • Multimodal Integration - Explore and develop novel methods to incorporate multi-omics data into imaging-based Phenomaps, advancing the state of the art in multimodal phenotypic analysis.
  • Collaboration & Communication - Partner with tissue engineers, microfluidics experts, and robotics engineers to refine data collection strategies, provide feedback on imaging system performance, and identify opportunities for improved AI-driven solutions.
  • Scientific Rigor & Leadership - Uphold scientific excellence through peer reviews, proper documentation, and clear communication. Drive a culture of continuous improvement, best practices, and adherence to rigorous research methodologies.
  • Scalability & Efficiency - Emphasize modularity, composability, and performance efficiency in designing and implementing high-throughput compute and analytics pipelines.
  • Domain & Technical Growth - Remain current with the latest research trends in Generative AI, biomedical imaging, cloud computing, and data-intensive training. Proactively share knowledge and mentor teammates to foster overall organizational expertise.
Requirements and Expectations
  • Scientific Excellence - Stay current with AI/ML research, especially in Generative AI, Transformers, Diffusion models, and multi-modal architectures. Apply rigorous, data-driven methods for sound outcomes.
  • Hands-On Leadership - Set high standards for model development and code quality, mentoring team members and fostering innovation.
  • Accountability - Own model and infrastructure development from concept to deployment, delivering reliable, scalable solutions aligned with Vivodyne's mission.
  • Problem Solving & Adaptability - Develop creative solutions to novel research challenges, thriving in a fast-paced, dynamic startup environment.
  • Collaboration & Communication - Work cross-functionally to align AI strategies with business goals, ensuring clear communication and consensus-building.
  • Delivering Results - Prioritize impactful research, using project management best practices to track progress, mitigate risks, and meet deadlines.
  • Architecture & Coding - Design scalable, cost-effective systems and produce clean, well-documented code with continuous testing and governance compliance.
  • Resource Optimization - Apply financial discipline to maximize the efficiency of compute, storage, and third-party services.
  • Team & Thought Leadership - Foster an inclusive environment, mentoring future leaders and representing Vivodyne in AI research and industry discussions.
Qualifications
  • Education & Experience
    • PhD in Computer Science, Applied Mathematics, or a related field, or equivalent practical experience.
    • Proven expertise developing and deploying advanced ML architectures (Transformers, Diffusion, multi-modal models) in Generative AI settings.
    • Demonstrated history of success with image processing and large-scale model training.
  • Technical Skills
    • Strong knowledge of AWS or another major cloud provider for MLOps, big data processing, and scalable computing.
    • Experience building models for petabyte-scale datasets and understanding the associated architectural and operational complexities.
  • Domain Expertise (Preferred)
    • Familiarity with biological or biomedical imaging; advanced knowledge in multi-modal Phenomaps, especially integrating imagery with multi-omics data, is a major plus.
  • Additional Desired Skills
    • Prior experience with HPC, GPU clusters, or distributed computing frameworks.
    • Comfortable with container orchestration and open-source data engineering/ML frameworks.
  • Soft Skills & Leadership
    • Strong written and oral communication skills, with a proven ability to present complex technical topics to non-experts.
    • Demonstrated ability to thrive in ambiguous environments, driving clarity and direction with minimal supervision.

Compensation will be determined based on several factors including, but not limited to, skill set, years of experience, and the employee's geographic location.

Pay Range

$220,000-$270,000 USD

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